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基于三维傅里叶变换和时间相位展开的人体胸部和腹部表面的三维测量。

3D Measurement of Human Chest and Abdomen Surface Based on 3D Fourier Transform and Time Phase Unwrapping.

机构信息

The Higher Educational Key Laboratory for Measuring & Control Technology and Instrumentations of Heilongjiang Province, Harbin University of Science and Technology, Harbin 150080, China.

出版信息

Sensors (Basel). 2020 Feb 17;20(4):1091. doi: 10.3390/s20041091.

Abstract

Monitoring respiratory movements is an effective way to improve radiotherapy treatments of thoracic and abdominal tumors, but the current approach is limited to measuring specific points in the chest and abdomen. In this paper, a dynamic three-dimensional (3D) measurement approach of the human chest and abdomen surface is proposed, which can infer tumor movement more accurately, so the radiotherapy damage to the human body can be reduced. Firstly, color stripe patterns in the RGB color model are projected, then after color correction, the collected stripe image sequences are separated into the three RGB primary color stripe image sequences. Secondly, a fringe projection approach is used to extract the folded phase combined 3D Fourier transform with 3D Gaussian filtering. By the relationship between adjacent fringe images in the time sequence, Gaussian filter parameters with individual characteristics are designed and optimized to improve the accuracy of wrapped phase extraction. In addition, based on the difference between the fractional parts of the folded phase error, one remainder equation can be determined, which is used for time-phase unwrapping. The simulation model and human experiments show that the proposed approach can obtain the 3D image sequences of the chest and abdomen surface in respiratory motion effectively and accurately with strong anti-interference ability.

摘要

监测呼吸运动是提高胸部和腹部肿瘤放射治疗效果的有效方法,但目前的方法仅限于测量胸部和腹部的特定点。本文提出了一种动态三维(3D)人体胸部和腹部表面测量方法,该方法可以更准确地推断肿瘤运动,从而减少放射治疗对人体的伤害。首先,在 RGB 颜色模型中投射彩色条纹图案,然后经过颜色校正,将采集到的条纹图像序列分离成三个 RGB 原色条纹图像序列。其次,采用条纹投影方法提取折叠相位,结合 3D 高斯滤波进行 3D 傅里叶变换。通过时间序列中相邻条纹图像之间的关系,设计和优化具有个体特征的高斯滤波器参数,以提高包裹相位提取的准确性。此外,基于折叠相位误差的小数部分之间的差异,可以确定一个余数方程,用于时间相位解包裹。模拟模型和人体实验表明,该方法能够有效地、准确地获取呼吸运动中胸部和腹部表面的 3D 图像序列,具有较强的抗干扰能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c901/7071058/23452ec6ee35/sensors-20-01091-g001.jpg

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